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首页> 外文期刊>Biomechanics and modeling in mechanobiology >Contraction dynamics and function of the muscle-tendon complex depend on the muscle fibre-tendon length ratio: a simulation study
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Contraction dynamics and function of the muscle-tendon complex depend on the muscle fibre-tendon length ratio: a simulation study

机译:模拟研究肌腱复合物的收缩动力学和功能取决于肌纤维腱长度比

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摘要

Experimental studies show different muscle-tendon complex (MTC) functions (e.g. motor or spring) depending on the muscle fibre-tendon length ratio. Comparing different MTC of different animals examined experimentally, the extracted MTC functions are biased by, for example, MTC-specific pennation angle and fibre-type distribution or divergent experimental protocols (e.g. influence of temperature or stimulation on MTC force). Thus, a thorough understanding of variation of these inner muscle fibre-tendon length ratios on MTC function is difficult. In this study, we used a hill-type muscle model to simulate MTC. The model consists of a contractile element (CE) simulating muscle fibres, a serial element (SE) as a model for tendon, and a parallel elastic element (PEE) modelling tissue in parallel to the muscle fibres. The simulation examines the impact of length variations of these components on contraction dynamics and MTC function. Ensuring a constant overall length of the MTC by , the SE rest length was varied over a broad physiological range from 0.1 to 0.9 MTC length. Five different MTC functions were investigated by simulating typical physiological experiments: the stabilising function with isometric contractions, the motor function with contractions against a weight, the capability of acceleration with contractions against a small inertial mass, the braking function by decelerating a mass, and the spring function with stretch-shortening cycles. The ratio of SE and CE mainly determines the MTC function. MTC with comparably short tendon generates high force and maximal shortening velocity and is able to produce maximal work and power. MTC with long tendon is suitable to store and release a maximum amount of energy. Variation of muscle fibre-tendon ratio yielded two peaks for MTC's force response for short and long SE lengths. Further, maximum work storage capacity of the SE is at long . Impact of fibre-tendon length ratio on MTC functions will be discussed. Considering a constant set of MTC parameters, quantitative changes in MTC performance (work, stiffness, force, energy storage, dissipation) depending on varying muscle fibre-tendon length ratio were provided, which enables classification and grading of different MTC designs.
机译:实验研究表明,取决于肌肉纤维-肌腱长度比,不同的肌肉-肌腱复合体(MTC)功能(例如运动或弹簧)。比较通过实验检查的不同动物的不同MTC,提取的MTC功能会受到例如MTC特定的垂角和纤维类型分布或不同的实验规程(例如温度或刺激对MTC力的影响)的影响。因此,很难全面了解这些内部肌肉纤维肌腱长度比对MTC功能的影响。在这项研究中,我们使用丘陵型肌肉模型来模拟MTC。该模型包括模拟肌肉纤维的收缩元素(CE),作为肌腱模型的序列元素(SE),以及与肌肉纤维平行组织的平行弹性元素(PEE)。仿真检查了这些组件的长度变化对收缩动力学和MTC功能的影响。确保MTC的总长度恒定,SE休息长度在0.1到0.9 MTC长度的较宽的生理范围内变化。通过模拟典型的生理实验研究了五种不同的MTC功能:等距收缩的稳定功能,对重量收缩的运动功能,对较小惯性质量的收缩加速能力,对质量进行减速的制动功能以及弹簧功能,缩短拉伸周期。 SE和CE的比例主要决定MTC功能。具有相对短的肌腱的MTC产生高的力和最大的缩短速度,并能够产生最大的功和力量。具有长肌腱的MTC适合存储和释放最大量的能量。肌肉纤维-肌腱比率的变化产生了两个短峰和长短SE长度的MTC力响应峰。此外,SE的最大工作存储容量很长。将讨论纤维-肌腱长度比对MTC功能的影响。考虑到一组恒定的MTC参数,根据变化的肌肉纤维-肌腱长度比,MTC性能(工作,刚度,力,能量存储,耗散)的定量变化得以提供,这使得能够对不同的MTC设计进行分类和分级。

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